Cellulose Nanofiber as a Distinct Structure-Directing Agent for Xylem-like Microhoneycomb Monoliths by Unidirectional Freeze-Drying

材料科学 纳米纤维 木质部 纤维素 石墨烯 复合数 蜂窝结构 蜂巢 复合材料 纳米技术 化学工程 生物 工程类 园艺
作者
Zheng‐Ze Pan,Hirotomo Nishihara,Shinichiroh Iwamura,Takafumi Sekiguchi,Akihiro Sato,Qiang Cai,Feiyu Kang,Takashi Kyotani,Quan‐Hong Yang
出处
期刊:ACS Nano [American Chemical Society]
卷期号:10 (12): 10689-10697 被引量:132
标识
DOI:10.1021/acsnano.6b05808
摘要

Honeycomb structures have been attracting attention from researchers mainly for their high strength-to-weight ratio. As one type of structure, honeycomb monoliths having microscopically dimensioned channels have recently gained many achievements since their emergence. Inspired by the microhoneycomb structure that occurs in natural tree xylems, we have been focusing on the assembly of such a structure by using the major component in tree xylem, cellulose, as the starting material. Through the path that finally led us to the successful reconstruction of tree xylems by the unidirectional freeze-drying (UDF) approach, we verified the function of cellulose nanofibers, toward forming xylem-like monoliths (XMs). The strong tendency of cellulose nanofibers to form XMs through the UDF approach was extensively confirmed with surface grafting or a combination of a variety of second components (or even a third component). The resulting composite XMs were thus imparted with extra properties, which extends the versatility of this kind of material. Particularly, we demonstrated in this paper that XMs containing reduced graphene oxide (denoted as XM/rGO) could be used as strain sensors, taking advantage of their penetrating microchannels and the bulk elasticity property. Our methodology is flexible in its processing and could be utilized to prepare various functional composite XMs.
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